Rational design of cobalt oxide nanocubes arrays on Ni foam as durable and robust electrocatalyst for urea electro-oxidation

IF 2.5 Q2 MULTIDISCIPLINARY SCIENCES
Mona M. Ismail, Ahmed A. Farghali, Ahmed G. El-Deen
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引用次数: 0

Abstract

Background

Cobalt oxide (Co3O4) is a promising electrocatalyst for efficient urea electro-oxidation, tackling power consumption and environmental challenges. The controllable design of free-standing Co3O4 nanostructures grown on Ni foam (NF) substrates was achieved using a green and facile hydrothermal approach. Different reducing agents were applied to synthesize various morphological structures of Co3O4, including nanoparticles, nanowires, and nanocubes (NCs) morphologies.

Results

The as-fabricated electrodes were investigated as electrocatalysts for enhanced urea electro-oxidation. Because of its 3D nanostructure with minimal agglomeration and a large interfacial surface area with adequate electroactive sites, the Co3O4 NCs/NF had the best energy conversion efficiency of any electrode toward the urea oxidation process. These distinctive features facilitated the electron and urea routes used in the urea electro-oxidation process. It had a low-onset potential of 194.2 mV (vs. Hg/HgO) and a current density of 90.2 mA cm−2 in a 1 M KOH electrolyte. The electrocatalyst demonstrated excellent anodic activity for urea electro-oxidation with an onset potential of 196.7 mV and a current density of 256.1 mA cm−2 in 1 M KOH + 0.3 M urea concentration. Furthermore, the Co3O4 NCs/NF exhibited long-term stability, as shown by chronoamperometry and stepwise tests after 3600 s in the presence of urea under various operating conditions.

Conclusions

Compared to all the fabricated Co3O4 nanostructures, the Co3O4 nanocubes revealed the highest electrocatalytic performance toward urea electro-oxidation in all concentrations. Therefore, Co3O4 NCs/NF is a promising, robust, and efficient electrocatalyst for direct urea fuel cell applications.

泡沫镍表面氧化钴纳米立方阵列作为尿素电氧化催化剂的合理设计
氧化钴(Co3O4)是一种很有前途的电催化剂,用于高效尿素电氧化,解决功耗和环境挑战。采用绿色、简便的水热方法,实现了在Ni泡沫(NF)衬底上生长独立的Co3O4纳米结构的可控设计。采用不同的还原剂合成了不同形态的Co3O4,包括纳米粒子、纳米线和纳米立方(NCs)形态。结果对制备的电极作为强化尿素电氧化的电催化剂进行了研究。在尿素氧化过程中,Co3O4 NCs/NF具有最小团聚的三维纳米结构和较大的界面表面积和充足的电活性位点,具有最佳的能量转换效率。这些独特的特性使得在尿素电氧化过程中使用电子和尿素路线更加方便。它具有194.2 mV (vs. Hg/HgO)的低电位和90.2 mA cm−2的电流密度,在1 M KOH电解质中。在1 M KOH + 0.3 M尿素浓度下,该电催化剂表现出优异的尿素电氧化活性,起始电位为196.7 mV,电流密度为256.1 mA cm−2。此外,在不同的操作条件下,在尿素存在的3600 s后,通过计时电流法和逐步测试表明,Co3O4 nc /NF具有长期稳定性。结论与制备的Co3O4纳米结构相比,Co3O4纳米立方在不同浓度下对尿素电氧化的催化性能最高。因此,Co3O4 NCs/NF是一种有前途的、强大的、高效的直接尿素燃料电池电催化剂。
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来源期刊
CiteScore
2.60
自引率
0.00%
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期刊介绍: Beni-Suef University Journal of Basic and Applied Sciences (BJBAS) is a peer-reviewed, open-access journal. This journal welcomes submissions of original research, literature reviews, and editorials in its respected fields of fundamental science, applied science (with a particular focus on the fields of applied nanotechnology and biotechnology), medical sciences, pharmaceutical sciences, and engineering. The multidisciplinary aspects of the journal encourage global collaboration between researchers in multiple fields and provide cross-disciplinary dissemination of findings.
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